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AI Solutions Architect

Job in Toronto, Ontario, C6A, Canada
Listing for: SearchLabs
Full Time position
Listed on 2026-09-18
Job specializations:
  • Software Development
    AI Engineer (Applied/Software), Software Architect, Machine Learning/ ML Engineer, AI Reliability/ Performance Engineer
Salary/Wage Range or Industry Benchmark: 200000 CAD Yearly CAD 200000.00 YEAR
Job Description & How to Apply Below

Are you an AI Solutions Architect who has actually taken AI into production
?

Have you designed systems using LLMs, RAG, agents, vector search, and model orchestration beyond the POC stage?

Do you want to help shape how a growing organization builds and scales production-grade AI
?

We’re working with a Toronto-based organization making a significant investment in AI and looking for someone who can bridge AI architecture, engineering, data, cloud, and the business
.

This is not simply a Software Engineer using AI tools to code. We’re looking for someone who has been responsible for architecting, integrating, deploying, and scaling AI systems in real production environments
.

What You’ll Do
  • Architect end-to-end GenAI and LLM-powered solutions from POC through production.
  • Design RAG pipelines, agentic workflows, model orchestration, and enterprise AI integrations
    .
  • Build architectures across LLM APIs, embeddings, vector databases, data pipelines, APIs, and cloud infrastructure
    .
  • Define approaches around model evaluation, observability, security, governance, and guardrails
    .
  • Make architectural decisions around latency, scalability, reliability, cost, and model performance
    .
  • Work across engineering, data, cloud, product, and business teams to turn AI use cases into production systems.
You Are
  • Experienced delivering LLM / GenAI systems into production
    , not just prototypes.
  • Strong across RAG, embeddings, vector search, agents, prompt/model orchestration, and AI APIs
    .
  • Comfortable with AWS/Azure/GCP, APIs, data architecture, distributed systems, and modern software architecture
    .
  • Familiar with MLOps/LLMOps, evaluation frameworks, monitoring, AI security, and responsible AI practices
    .
  • Able to translate complex business requirements into scalable AI architecture.
Why This Role
  • Real AI Engineering – production systems, not AI demos.
  • Architecture Ownership – influence how AI is designed, integrated, governed, and scaled.
  • Strong Compensation – up to $200K+ base
    .
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